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Updated: Jul 21, 2026

Utilizing Transcranial Magnetic Stimulation to Study the Human Neuromuscular System
Published on: January 20, 2012
Voluntary contraction shortens peripheral conduction time in response to transcranial magnetic stimulation of the
S Izumi1, T W Findley, J F Andrews
1Kessler Institute for Rehabilitation, West Orange, NJ, USA.
Abstract:
We investigated the effects of voluntary contraction on peripheral conduction time in response to transcranial magnetic stimulation (TMS) of the brain in 10 normal subjects. We obtained surface recordings of compound muscle action potentials (CMAP) from the abductor digiti minimi muscle (ADM) and nerve action potentials (NAP) from the ulnar nerve, at rest and during contraction (10% of maximal voluntary contraction) in response to TMS delivered at 100% output using a coil shaped like a figure 8. The distance between the two recording electrodes was 10 cm. The distal latency in response to TMS was calculated by subtracting the NAP latency from the CMAP latency. Distal latency was also measured by recording ADM responses to supramaximal electrical stimulation (ES) 10 cm proximal to the recording electrode. TMS-induced distal latency was significantly shorter during voluntary contraction than at rest (P < 0.0001). There was no significant difference between TMS-induced distal latency during contraction and ES-induced distal latency. TMS-induced distal latencies at rest and during contraction were correlated with the ES-induced distal latencies (r2 = 0.468, P = 0.028 and r2 = 0.769, P = 0.0009, respectively). Our results showed that the peripheral conduction time in response to TMS was related to the activity of the target muscle and to the fastest conduction velocity of the target nerve. Voluntary contraction reduced the peripheral conduction time in response to TMS.
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